析氧
甲酸
催化作用
法拉第效率
电化学
化学工程
阳极
乙二醇
电解
材料科学
电解水
制氢
氧气
氢
化学
电催化剂
乙烯
碳纤维
纳米技术
氧化还原
双功能
分解水
本体电解
反应机理
聚对苯二甲酸乙二醇酯
纳米棒
无机化学
作者
Xingye Lu,Jia Song,Yi Guo,Congcong Liang,Yuanyuan Liu,Zeyan Wang,Hefeng Cheng,Zhaoke Zheng,Yaqiang Wu,Buwei Huang,Peng Wang
摘要
ABSTRACT Electrochemical upcycling of polyethylene terephthalate (PET) plastics coupled with hydrogen production offers a sustainable pathway for carbon reutilization and energy sustainability. However, PET‐derived ethylene glycol electro‐oxidation reaction (EGOR) in alkaline conditions inevitably competes with oxygen evolution reaction (OER) due to enhancing OH − utilization for OER under industrially relevant high‐current conditions, reducing electrolysis efficiency and degrading catalyst stability. In this study, we precisely regulate oxygen‐defect concentration to construct an unsaturated CoFeO x (OH) y /CFP catalyst, achieving 93% ± 2% Faradaic efficiency (FE) for formic acid and over 700 h of stability. In situ characterizations and theoretical calculations show that oxygen defects tune the surface electronic structure and promote the timely consumption of electrochemically generated MO x (OH) y species by EG preventing the excessive accumulation of high‐valence species and suppressing OH − evolution into oxygenated OER intermediates. By balancing MO x (OH) y formation with its spontaneous reaction with EG, OH − utilization toward EGOR is enhanced, enabling efficient OER suppression at high anodic potentials. Furthermore, a large‐scale three‐cell electrolyzer (300 cm 2 per piece) achieves 17.4 A at 3 V with nearly 100% FE for hydrogen production, reducing energy consumption by > 21.05% compared with overall water splitting. This work provides mechanistic insights and a practical strategy for industrial PET upcycling integrated with low‐energy hydrogen production.
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